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Dynamic learning paths framework based on collective intelligence from learners

机译:基于学习者集体智慧的动态学习路径框架

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Learning maps allow learners to organize and personalize their learning materials, thus helping them to more effectively achieve their learning objectives. Accordingly, there has been ongoing research about learning maps with the goal of developing a comprehensive, easy to use, and powerful learning map. At present, the two most frequently used maps have either an ontological basis or take their design from the Petri net. These both provide a useful learning tool for learners. The ontology-based learning map represents integral concepts of knowledge and the relationships among concepts; however, it lacks the ability to control the learners' progress. The Petri net-based map can handle and personalize learning progress and designing the map is relatively easy, but its representation of the subject matter is relatively weak. The aim of this study is to design useful learning sequences and a representation interface that combine the above strengths. To do this, it offers the Dynamic Learning Paths Framework (DLPF), which is based on schema theory and the concept of collective intelligence. With the DLPF system, learners can provide feedback and contribute to a specific learning schema by submitting extra learning material. The self-improvement mechanism in the DLPF is designed to maintain the quality of learning materials to avoid the bias of collective intelligence. To evaluate the DLPF, questionnaires were developed and experiments to ascertain learning performance experiment were conducted. The results show that the proposed framework provides the well-organized learning materials, presents subject material effectively and can contribute to an improvement in learners' academic performance.
机译:学习地图使学习者可以组织和个性化他们的学习材料,从而帮助他们更有效地实现他们的学习目标。因此,正在进行关于学习地图的研究,以开发全面,易于使用且功能强大的学习地图为目标。目前,两个最常用的地图要么具有本体论基础,要么来自Petri网。这些都为学习者提供了有用的学习工具。基于本体的学习图表示知识的整体概念以及概念之间的关系。但是,它缺乏控制学习者进度的能力。基于Petri网的地图可以处理和个性化学习进度,并且设计地图相对容易,但是其对主​​题的表示相对较弱。这项研究的目的是设计结合上述优势的有用的学习序列和表示接口。为此,它提供了基于模式理论和集体智慧概念的动态学习路径框架(DLPF)。使用DLPF系统,学习者可以通过提交额外的学习材料来提供反馈并为特定的学习模式做出贡献。 DLPF中的自我完善机制旨在保持学习材料的质量,以避免集体智慧的偏差。为了评估DLPF,开发了问卷并进行了实验以确定学习性能实验。结果表明,所提出的框架提供了组织良好的学习材料,有效地介绍了主题材料,并有助于提高学习者的学习成绩。

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